TY - JOUR
T1 - Flexible Gray-Scale Surface Patterning Through Spatiotemporal-Interference-Based Femtosecond Laser Shaping
AU - Li, Bohong
AU - Jiang, Lan
AU - Li, Xiaowei
AU - Lin, Zemeng
AU - Huang, Lingling
AU - Wang, Andong
AU - Han, Weina
AU - Wang, Zhi
AU - Lu, Yongfeng
N1 - Publisher Copyright:
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2018/12/17
Y1 - 2018/12/17
N2 - The function of a laser-shaped material depends on the geometrical morphology of its laser-induced surface structures, which is mainly determined by the spatial intensity distribution of the laser. However, conventional patterning methods based on laser shaping techniques have shortcomings in efficiency or flexibility. A novel patterning method is developed in the present study for mask-free and flexible fabrication of surface structures through a time-saving spatiotemporal-interference-based femtosecond laser shaping technique that is based on a Michelson interferometer. The phase-difference distribution is controlled by a spatial light modulator so that the interference intensity distribution can be modulated to user-designed shapes. The congruence between the interference intensity distribution and the geometries on phase holograms enables the generation of phase holograms without complicated algorithms and time-consuming calculations. This uniquely simple technique realizes flexible gray-scale patterning on bulk material surfaces with a single femtosecond laser pulse. Thus, by using the on-the-fly technique, fabrication of large-area surface structures is realized. Moreover, this technique is applied to fabricate complex structures through splicing. As an application example, three types of terahertz filters, including band-stop and band-pass filters, are fabricated successfully; their transmittance is in good agreement with the finite-difference time-domain simulation results.
AB - The function of a laser-shaped material depends on the geometrical morphology of its laser-induced surface structures, which is mainly determined by the spatial intensity distribution of the laser. However, conventional patterning methods based on laser shaping techniques have shortcomings in efficiency or flexibility. A novel patterning method is developed in the present study for mask-free and flexible fabrication of surface structures through a time-saving spatiotemporal-interference-based femtosecond laser shaping technique that is based on a Michelson interferometer. The phase-difference distribution is controlled by a spatial light modulator so that the interference intensity distribution can be modulated to user-designed shapes. The congruence between the interference intensity distribution and the geometries on phase holograms enables the generation of phase holograms without complicated algorithms and time-consuming calculations. This uniquely simple technique realizes flexible gray-scale patterning on bulk material surfaces with a single femtosecond laser pulse. Thus, by using the on-the-fly technique, fabrication of large-area surface structures is realized. Moreover, this technique is applied to fabricate complex structures through splicing. As an application example, three types of terahertz filters, including band-stop and band-pass filters, are fabricated successfully; their transmittance is in good agreement with the finite-difference time-domain simulation results.
KW - femtosecond laser shaping
KW - patterning
KW - spatiotemporal interference
UR - http://www.scopus.com/inward/record.url?scp=85055484150&partnerID=8YFLogxK
U2 - 10.1002/adom.201801021
DO - 10.1002/adom.201801021
M3 - Article
AN - SCOPUS:85055484150
SN - 2195-1071
VL - 6
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 24
M1 - 1801021
ER -